4.8 Article

Unravelling the mechanisms of Type 1A topoisomerases using single-molecule approaches

期刊

NUCLEIC ACIDS RESEARCH
卷 49, 期 10, 页码 5470-5492

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OXFORD UNIV PRESS
DOI: 10.1093/nar/gkab239

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资金

  1. Netherlands Organization for Scientific Research (NWO) [714.015.002]
  2. Netherlands Organization for Scientific Research (NWO), Chemical Sciences TOP grant [714.015.002]
  3. Netherlands Organization for Scientific Research, Chemical Sciences TOP grant

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Type 1A topoisomerases are essential enzymes that require single-stranded DNA for activity, playing a crucial role in maintaining DNA structure and resolving entanglements during replication and repair. Recent advancements in single-molecule assays and biochemical studies have provided a deeper understanding of their gate opening dynamics, strand-passage mechanisms, and interactions with partner proteins like RecQ-family helicases. These assays have also shed new light on their functional roles in vivo and the potential for further enhancing our understanding of these enzymes through single-molecule technologies.
Topoisomerases are essential enzymes that regulate DNA topology. Type 1A family topoisomerases are found in nearly all living organisms and are unique in that they require single-stranded (ss)DNA for activity. These enzymes are vital for maintaining supercoiling homeostasis and resolving DNA entanglements generated during DNA replication and repair. While the catalytic cycle of Type 1A topoisomerases has been long-known to involve an enzyme-bridged ssDNA gate that allows strand passage, a deeper mechanistic understanding of these enzymes has only recently begun to emerge. This knowledge has been greatly enhanced through the combination of biochemical studies and increasingly sophisticated single-molecule assays based on magnetic tweezers, optical tweezers, atomic force microscopy and Forster resonance energy transfer. In this review, we discuss how single-molecule assays have advanced our understanding of the gate opening dynamics and strand-passage mechanisms of Type 1A topoisomerases, as well as the interplay of Type 1A topoisomerases with partner proteins, such as RecQ-family helicases. We also highlight how these assays have shed new light on the likely functional roles of Type 1A topoisomerases in vivo and discuss recent developments in single-molecule technologies that could be applied to further enhance our understanding of these essential enzymes.

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